Management affects the diversity and functions of root and leaf-associated microbiomes: implications for olive resilience. [PDF]
Fosso E +8 more
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Industrial applicability of enzymatic and whole-cell processes for the utilization of C1 building blocks. [PDF]
Barone GD +11 more
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Methylotrophy: a great asset in symbiosis process.
Renier, Adeline +7 more
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Environmental Filtering of Bacterial Communities Driven by Pesticide Residue Profiles in the Almaty Region, Kazakhstan. [PDF]
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A synthetic methylotrophic <i>Escherichia coli</i> as a chassis for bioproduction from methanol. [PDF]
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Developmental Stage-Driven Niche Differentiation and Assembly of Rhizosphere and Endophytic Bacterial Communities in <i>Helianthus annuus</i> Under Saline-Alkaline Stress. [PDF]
Liu B, Lu T, Yao T, Zhao X, Yang L.
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Bioconversion of Methanol by Synthetic Methylotrophy
Advances in Biochemical Engineering/Biotechnology, 2021As an important building block in the chemical industry, methanol has become an attractive substrate in biorefinery owing to its abundance and low cost. With the development of synthetic biology, metabolic engineering of non-methylotrophy to construct synthetic methylotrophy has drawn increased attention.
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Current Trends in Methylotrophy
Trends in Microbiology, 2018Methylotrophy is a field of study dealing with microorganisms capable of utilization of compounds devoid of carbon-carbon bonds (C1 compounds). In this review, we highlight several emerging trends in methylotrophy. First, we discuss the significance of the recent discovery of lanthanide-dependent alcohol dehydrogenases for understanding both the ...
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Methylobacterium extorquens: methylotrophy and biotechnological applications [PDF]
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Modularity of methylotrophy, revisited
Environmental Microbiology, 2011Summary Methylotrophy is a metabolic capability possessed by microorganisms that allows them to build biomass and to obtain energy from organic substrates containing no carbon–carbon bonds (C1 compounds, such as methane, methanol, etc.).
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